Ultrasonic Cell Disruption Machine

The ultrasonic cell disruptor converts electrical energy into high-frequency mechanical vibrations, which generate cavitation effects through the probe. This process creates micro-bubbles in the liquid that collapse, producing shock waves that disrupt cell structures. It is used in laboratories for extracting intracellular components, dispersing nanomaterials, or emulsifying liquids, and finds applications in biological sample pretreatment, pharmaceuticals, and materials science.
Selection
When selecting, consider matching the probe size with the sample type and volume. The cell wall strength determines the power requirement. Choose between continuous or intermittent modes based on the heat sensitivity of the sample. The titanium alloy probe's corrosion resistance makes it suitable for biochemical samples. The temperature control function prevents protein denaturation, and the soundproof design reduces operational noise.

Terms

Standards

Instruments

6Mm diaMeter design, Processing capacity range of 10-100ml, suitable for a variety of ultrasonic cell crushing instrument models, to achieve efficient Sample Handling, to meet the needs of different capacity experiments.

$ 199.00

DiaMeter 2mm design, Processing capacity range 0.1-5 ml, suitable for a variety of ultrasonic cell crushing instrument models, suitable for efficient processing of small volume samples.

$ 199.00

3Mm diaMeter design, Processing capacity range is 3-10ml, suitable for a variety of ultrasonic cell crushing instrument models, providing stable Sample Handling performance.

$ 199.00

22Mm diaMeter design, Processing capacity range 200-1200ml, suitable for a variety of ultrasonic cell crushing instrument models, providing stable amplitude transfer efficiency, suitable for processing needs of different volumes of samples.

$ 262.00

20Mm diaMeter design, Processing capacity range 100-1000ml, suitable for a variety of ultrasonic cell crushing instrument models, providing stable and efficient Sample Handling ability.

$ 262.00

8Mm diaMeter design, Processing capacity range of 20-200ml, suitable for a variety of ultrasonic cell crushing instrument models, to achieve efficient Sample Handling, to meet different experimental needs.

$ 199.00

15Mm diaMeter design, Processing capacity range 200-700ml, suitable for a variety of ultrasonic cell crushing instrument models, providing stable amplitude transfer and efficient Sampling Handling ability.

$ 262.00

Processing capacity 30-300ml, suitable for a variety of ultrasonic cell crushing instrument models, using 10mm design to ensure energy transfer efficiency, suitable for medium-sized Sample Handling.

$ 262.00

25Mm diaMeter design, Processing capacity range 500-1500ml, suitable for a variety of ultrasonic cell crushing instrument models, to achieve efficient energy transmission and stable crushing effect.

$ 262.00

15Mm diaMeter design, Processing capacity range 200-700ml, suitable for a variety of ultrasonic cell crushing instrument models to ensure energy transfer efficiency and Sample Handling Stability.

$ 199.00

12Mm diaMeter design, Processing capacity 50-500ml, suitable for a variety of ultrasonic cell crushing instrument models, providing stable energy transfer and efficient Sampling Handling capability.

$ 199.00

Power 2.5-250 W is continuously adjustable, supports 0.1-99 ultrasonic time, is equipped with sound insulation box noise reduction of more than 70%, and has automatic Frequency tracking and overload protection functions.

$ 1297.00

28Mm diaMeter design, processing capacity 500-1500ml, specially optimized for large-capacity Sample Handling, suitable for a variety of ultrasonic crushing instrument models, providing stable and efficient ultrasonic energy transfer.

$ 262.00

Power 1.5-150 W continuously adjustable, single ultrasound time 0.1-99 seconds, equipped with sample temperature detection and Frequency automatic tracking, with overload protection and no load alarm function, can continuously ultrasonic for more than one hour, reduce noise by 70%.

$ 1206.00

Power 10-900W continuously adjustable, supporting sound insulation box to reduce noise by more than 70%, support sample temperature detection display and frequency automatic tracking, with overload protection and no-load automatic alarm function, can achieve long-term continuous ultrasonic processing.

$ 1606.00

Articles

Ultrasonic Thickness Gauge Selection: Technical Considerations for Probe Configuration and Measurement Modes
This article primarily introduces the technical factors to consider when selecting an ultrasonic thickness gauge. In terms of probe configuration, the frequency affects both resolution and penetration depth, while crystal size determines adaptability to curvature and surface conditions. Dual-element probes offer a smaller dead zone compared to single-element probes, and delay-line probes are suitable for thin-wall and high-temperature applications.
Ultrasonic thickness gauge for detecting thick coatings and composite coatings.
Ultrasonic thickness gauges measure coating thickness using the principle of ultrasonic pulse reflection, calculating the result based on the propagation time of sound waves in the material and the speed of sound. When detecting thick coatings and composite coatings, challenges such as acoustic attenuation of the material, unknown sound speed, and signal recognition at multi-layer interfaces must be addressed.
Ultrasonic Thickness Gauge Measures the Thickness of Flexible Packaging Materials
This article introduces the principles, technical points, and operational procedures for measuring the thickness of flexible packaging materials using an ultrasonic thickness gauge. It is based on the principle of ultrasonic pulse reflection, which calculates thickness by measuring the propagation time of sound waves through the material.
The principle of measuring dry film thickness with a coating thickness gauge
Coating thickness gauges measure dry film thickness through non-destructive methods, with commonly used principles including electromagnetic induction, eddy current, and ultrasonic methods.
To determine if an ultrasonic cleaner cleans effectively, first understand the two key parameters: frequency and power.
This article mainly discusses how to achieve thorough cleaning with an ultrasonic cleaner, emphasizing that the key factors are frequency and power. The frequency determines the size and penetrating ability of the bubbles generated during cleaning, while the power provides the necessary energy for the cleaning process.